Reconstructed three-dimensional structure of gas-foamed polycaprolactone/cellulose nanofibrous scaffold for biomedical applications

被引:0
作者
Nayaju, Tulsi [1 ]
Shrestha, Devendra [1 ,3 ]
Kang, Kyoungin [1 ]
Maharjan, Bikendra [2 ]
Park, Chan Hee [1 ,2 ,3 ,4 ,5 ]
机构
[1] Jeonbuk Natl Univ, Grad Sch, Dept Bionanotechnol & Bioconvergence Engn, Jeonju 54896, South Korea
[2] Jeonbuk Natl Univ, Grad Sch, Dept Bionanosyst Engn, Jeonju 54896, South Korea
[3] Jeonbuk Natl Univ, Div Mech Design Engn, Jeonju 54896, South Korea
[4] Jeonbuk Natl Univ, Ecofriendly Machine Parts Design Res Ctr, Jeonju, South Korea
[5] Jeonbuk Natl Univ, Sch Semicond & Chem Engn, Jeonju, South Korea
基金
新加坡国家研究基金会;
关键词
Cellulose acetate; Gas-foaming technique; 3D scaffold; FABRICATION; HYDROGELS; CELLULOSE; CHITOSAN; BIOMATERIALS; GELATIN; BIOCOMPATIBILITY; HYDROXYAPATITE; DELIVERY;
D O I
10.1016/j.ijbiomac.2024.138253
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
One of the unavoidable issues with the bio-scaffolding process is the collapse of the visually appealing external three-dimensional (3D) sponge-like structure and the internal porous and multilayered morphology of a gasfoamed nanofibrous scaffold. Herein, a gas-foamed polycaprolactone/cellulose (g-PCL/CL) nanofibers scaffold is first prepared by electrospinning PCL/cellulose acetate, followed by deacetylation and then Sodium borohydride-assisted gas-foaming technique. The deformed 3D architecture of g-PCL/CL nanofiber is finally reconstructed by mixing it with chitosan (CS) solution and molding. This straightforward method leverages the mechanical strength of PCL, the hydrophilic properties of CL, and the curing characteristics of chitosan. The physical characterization validated the successful reformation of the 3D architecture of the CS + PCL/CL scaffold demonstrating the unique porous interior structure assembled with nanofiber-reinforced pore walls. This molding process with chitosan solution enables the formation of mechanically enhanced 3D scaffolds with improved structural integrity, as evidenced by the increased compressive strength of the CS + PCL/CL scaffold (similar to 95 kPa). In vitro studies further demonstrate improved cell adhesion, differentiation, and proliferation for the CS + PCL/CL scaffold. These findings suggest that the structurally reconstructed CS + PCL/CL composite scaffold possesses suitable characteristics to act as a potential bioscaffold, paving the way for promising strategies to retain the structural integrity of collapse scaffolds.
引用
收藏
页数:13
相关论文
共 50 条
  • [1] Three-dimensional porous gas-foamed electrospun nanofiber scaffold for cartilage regeneration
    Chen, Yujie
    Xu, Wei
    Shafiq, Muhammad
    Tang, Jincheng
    Hao, Junxiang
    Xie, Xianrui
    Yuan, Zhengchao
    Xiao, Xianghao
    Liu, Yu
    Mo, Xiumei
    JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2021, 603 : 94 - 109
  • [2] Polycaprolactone-chitosan-polypyrrole conductive biocomposite nanofibrous scaffold for biomedical applications
    Talebi, Alireza
    Labbaf, Sheyda
    Karimzadeh, Fathallah
    POLYMER COMPOSITES, 2020, 41 (02) : 645 - 652
  • [3] Three-dimensional gas-foamed scaffolds decorated with metal phenolic networks for cartilage regeneration
    Chen, Yujie
    Xu, Wei
    Pan, Zhen
    Li, Bohui
    Mo, Xiumei
    Li, Yucai
    Wang, Jielin
    Wang, Yuan
    Wei, Zhenyuan
    Chen, Yicheng
    Han, Zhaopu
    Lin, Chen
    Liu, Yu
    Ye, Xiaojian
    Yu, Jiangming
    MATERIALS TODAY BIO, 2024, 29
  • [4] Fabrication of a Polycaprolactone/Chitosan Nanofibrous Scaffold Loaded with Nigella sativa Extract for Biomedical Applications
    Kahdim, Qasim Shakir
    Abdelmoula, Najmeddine
    Al-Karagoly, Hassan
    Albukhaty, Salim
    Al-Saaidi, Jabbar
    BIOTECH, 2023, 12 (01):
  • [5] Three-dimensional printed polycaprolactone-microcrystalline cellulose scaffolds
    Aleman-Dominguez, Maria Elena
    Giusto, Elena
    Ortega, Zaida
    Tamaddon, Maryam
    Nizardo Benitez, Antonio
    Liu, Chaozong
    JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART B-APPLIED BIOMATERIALS, 2019, 107 (03) : 521 - 528
  • [6] Electrospun three-dimensional silk fibroin nanofibrous scaffold
    Ki, Chang Seok
    Kim, Jong Wook
    Hyun, Jin Ho
    Lee, Ki Hoon
    Hattori, Masahiro
    Rah, Dong Kyun
    Park, Young Hwan
    JOURNAL OF APPLIED POLYMER SCIENCE, 2007, 106 (06) : 3922 - 3928
  • [7] Potential applications of three-dimensional structure of silk fibroin/poly(ester-urethane) urea nanofibrous scaffold in heart valve tissue engineering
    Du, Juan
    Zhu, Tonghe
    Yu, Haiyan
    Zhu, Jingjing
    Sun, Changbing
    Wang, Jincheng
    Chen, Sihao
    Wang, Jihu
    Guo, Xuran
    APPLIED SURFACE SCIENCE, 2018, 447 : 269 - 278
  • [8] A Three-Dimensional Polycaprolactone Scaffold Combined with a Drug Delivery System Consisting of Electrospun Nanofibers
    Yoon, Hyeon
    Kim, GeunHyung
    JOURNAL OF PHARMACEUTICAL SCIENCES, 2011, 100 (02) : 424 - 430
  • [9] Three-Dimensional Printed Cellulose for Wound Dressing Applications
    Fahma, Farah
    Firmanda, Afrinal
    Cabral, Jaydee
    Pletzer, Daniel
    Fisher, John
    Mahadik, Bhushan
    Arnata, I. Wayan
    Sartika, Dewi
    Wulandari, Anting
    3D PRINTING AND ADDITIVE MANUFACTURING, 2023, 10 (05) : 1015 - 1035
  • [10] Three-dimensional printing of metals for biomedical applications
    Ni, J.
    Ling, H.
    Zhang, S.
    Wang, Z.
    Peng, Z.
    Benyshek, C.
    Zan, R.
    Miri, A. K.
    Li, Z.
    Zhang, X.
    Lee, J.
    Lee, K. -J.
    Kim, H. -J.
    Tebon, P.
    Hoffman, T.
    Dokmeci, M. R.
    Ashammakhi, N.
    Li, X.
    Khademhosseini, A.
    MATERIALS TODAY BIO, 2019, 3